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A novel rate-dependent cohesive-zone model combining damage and visco-elasticity

机译:结合损伤和粘弹性的新型基于速率的内聚区模型

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摘要

This paper presents a novel rate-dependent cohesive-zone model combining damage and visco-elasticity and based on two fundamental assumptions. Firstly we postulate the existence of an intrinsic (i.e. rate-independent) fracture energy. Secondly, within a thermodynamically consistent damage-mechanics framework we assume that the evolution of the damage variable is related to the current free energy and to the intrinsic fracture energy. The underlying idea is that the energy of the bonds at the micro-level is rate-independent and that the rate-dependence of the overall dissipated energy during crack propagation is a natural by-product of the visco-elastic dissipation lumped on the zero-thickness interface. Quite good agreement within an expected range of loading rates was obtained between numerical and experimental results for a DCB specimen with steel arms bonded through a rubber interface. This is despite the fact that for this application the model has been kept as simple as possible using a quadratic elastic energy and linear visco-elasticity with one relaxation time only. Therefore, the presented results support the fundamental principles behind the proposed approach and indicate that the model has the potential to be refined into a highly accurate tool of analysis based on sound physical arguments.
机译:本文基于两个基本假设,提出了一种结合损伤和粘弹性的新型速率依赖型粘聚区模型。首先,我们假设存在固有的(即与速率无关)断裂能。其次,在热力学一致的损伤力学框架内,我们假设损伤变量的演变与当前的自由能和内在的断裂能有关。基本思想是,微观级的键的能量与速率无关,并且裂纹扩展过程中总耗散能量的速率相关性是粘弹性耗散的自然副产物,该粘弹性耗散集中于零。厚度界面。在DCB标本中,钢臂通过橡胶界面粘结在一起,在数值和实验结果之间,在预期的加载速率范围内获得了很好的一致性。尽管有这样一个事实,对于该应用,仅使用一个松弛时间使用二次弹性能和线性粘弹性就使模型保持尽可能简单。因此,本文提出的结果支持了所提出方法背后的基本原理,并表明该模型有可能被完善为基于合理物理参数的高度准确的分析工具。

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